INTEGRATED CIRCUIT DEVICE AND METHOD FOR DUAL-MODE TRANSPONDER COMMUNICATION
In an embodiment, an integrated circuit (IC) device is disclosed. In the embodiment, the IC device includes a load modulation module, a current source coupled to the load modulation module, an interface to a resonant circuit, the interface coupled to the load modulation module and the current source, and an interface to a charge source, the interface coupled to the current source, wherein the load modulation module is configured to provide a signal for transmission by modifying the load through the load modulation module, and wherein the current source is configured to provide a signal for transmission by generating pulses of current.
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Many countries require new vehicles to include an immobilizer device in ignition circuitry of the vehicles. An immobilizer is a security system, typically made up of an immobilizer base station and a transponder in a key. The immobilizer base station is typically located in the steering column or in the dashboard of a vehicle and is able to prevent fuel flow or ignition of the vehicle (e.g., by breaking an electrical circuit or otherwise disabling signal flow within the circuitry of the vehicle) when the key is not present. Properly configured, an immobilizer can greatly reduce the possibility of vehicle theft because standard hotwiring methods are ineffective.
SUMMARYIn an embodiment, an integrated circuit (IC) device is disclosed. In the embodiment, the IC device includes a load modulation module, a current source coupled to the load modulation module, an interface to a resonant circuit, the interface coupled to the load modulation module and the current source, and an interface to a charge source, the interface coupled to the current source, wherein the load modulation module is configured to provide a signal for transmission by modifying the load through the load modulation module, and wherein the current source is configured to provide a signal for transmission by generating pulses of current.
In another embodiment, the IC is configured to utilize either the load modulation module or the current source.
In another embodiment, the IC device determines if load modulation or active transmission should be used based on an initialization command.
In another embodiment, the IC device further comprises a command interpreter configured to interpret a received initialization command, enable the current source and disable the load modulation, and disable the current source and enable the load modulation module according to a mode indicated by the initialization command.
In a second embodiment, a transponder is disclosed. In the embodiment, the transponder includes a resonant circuit serving as an antenna, a load modulation module coupled to the resonant circuit, and a current source coupled to the resonant circuit, wherein the load modulation module is configured to transmit a signal via the resonant circuit by opening and closing a switch in order to modify the load on the resonant circuit, and wherein the current source is configured to transmit a signal via the resonant circuit by delivering electric current to the resonant circuit to generate pulses in a magnetic field.
In another embodiment, the transponder includes a plurality of antennas.
In another embodiment, the plurality of antennas are arranged in an orthogonal pattern.
In another embodiment, the antenna with the strongest signal is used for transmission.
In another embodiment, the transponder utilizes either the load modulation module or the current source to transmit a signal via the resonant circuit.
In another embodiment, the transponder further includes a command interpreter configured to interpret a received initialization command, enable the current source and disable the load modulation, and disable the current source and enable the load modulation module according to a mode indicated by the initialization command.
In another embodiment, the command interpreter is implemented with a microcontroller, the microcontroller including a demodulator configured to receive a serial bitstream and convert the bitstream into at least one of a byte or a word.
In a third embodiment, a method for transmitting a signal via a resonant circuit of a transponder is disclosed. In the embodiment, the method involves selecting a transmission mode via control logic in an IC device, receiving, at an IC device, a command carried by a carrier signal, and if a transmission mode utilizing load modulation is selected, configuring response data stored in memory of the IC device as specified by the command and providing data for wireless transmission using load modulation to a load modulation module of the IC device, and, if a transmission mode utilizing active transmission is selected, charging a capacitor coupled to the IC device using the carrier signal, configuring response data stored in memory of the IC device as specified by the command, and providing data for wireless transmission using charge from the capacitor delivered by a current source of the IC device.
In another embodiment, if a transmission mode utilizing active transmission is selected, the method further involves determining if the IC device utilizing the transmission mode is coupled to multiple antennas and, if multiple antennas are found, providing the data to the antenna with the strongest channel for transmission.
In another embodiment, determining which antenna has the strongest channel involves adding loads to channels coupled to each antenna and selecting the antenna with the highest amplitude.
In another embodiment, the transmission mode is selected in response to a command received from a base station.
In another embodiment, selecting a transmission mode, in accordance with a mode indicated by the command received from the base station, involves at least one of enabling the current source and disabling the load modulation module and disabling the current source and enabling the load modulation module.
In another embodiment, the transmission mode is selected by pre-configuring the IC device utilizing the transmission mode.
In another embodiment, the carrier signal is turned off after the capacitor is finished charging.
Other aspects and advantages of embodiments of the present invention will become apparent from the following detailed description taken in conjunction with the accompanying drawings.
Throughout the description, similar reference numbers may be used to identify similar elements.
DETAILED DESCRIPTIONIt will be readily understood that the components of the embodiments as generally described herein and illustrated in the appended figures could be arranged and designed in a wide variety of different configurations. Thus, the following more detailed description of various embodiments, as represented in the figures, is not intended to limit the scope of the present disclosure, but is merely representative of various embodiments. While the various aspects of the embodiments are presented in drawings, the drawings are not necessarily drawn to scale unless specifically indicated.
The present invention may be embodied in other specific forms without departing from its spirit or essential characteristics. The described embodiments are to be considered in all respects only as illustrative and not restrictive. The scope of the invention is, therefore, indicated by the appended claims rather than by this detailed description. All changes which come within the meaning and range of equivalency of the claims are to be embraced within their scope.
Reference throughout this specification to features, advantages, or similar language does not imply that all of the features and advantages that may be realized with the present invention should be or are in any single embodiment of the invention. Rather, language referring to the features and advantages is understood to mean that a specific feature, advantage, or characteristic described in connection with an embodiment is included in at least one embodiment of the present invention. Thus, discussions of the features and advantages, and similar language, throughout this specification may, but do not necessarily, refer to the same embodiment.
Furthermore, the described features, advantages, and characteristics of the invention may be combined in any suitable manner in one or more embodiments. One skilled in the relevant art will recognize, in light of the description herein, that the invention can be practiced without one or more of the specific features or advantages of a particular embodiment. In other instances, additional features and advantages may be recognized in certain embodiments that may not be present in all embodiments of the invention.
Reference throughout this specification to “one embodiment,” “an embodiment,” or similar language means that a particular feature, structure, or characteristic described in connection with the indicated embodiment is included in at least one embodiment of the present invention. Thus, the phrases “in one embodiment,” “in an embodiment,” and similar language throughout this specification may, but do not necessarily, all refer to the same embodiment.
Typically, a transponder is configured for a transmission mode utilizing either load modulation or active transmission, but not both since different circuitry and protocols or at least different protocol timings are required for each transmission mode. For example,
In order to receive and transmit data, a transponder configured to utilize load modulation, such as the transponder 204 of
Alternatively, active transmission can be used to transmit data.
In order to receive and transmit data, a transponder configured to utilize active transmission, such as the transponder 404 shown in
Legacy immobilizer systems have typically utilized load modulation, but some immobilizer systems are transitioning to the use of active transmission in order to increase the communication distance. While load modulation is typically more robust than active transmission (e.g., due to the larger signal used with load modulation), active transmission is often favored for its greater signal range. However, conventional transponders are configured to support load modulation or active transmission, but not both simultaneously because different circuity is required for each transmission mode (as shown in
In an embodiment, an integrated circuit (IC) device is disclosed. In the embodiment, the IC device includes a load modulation module, a current source coupled to the load modulation module, an interface to a resonant circuit, the interface coupled to the load modulation module and the current source, and an interface to a charge source, the interface coupled to the current source, wherein the load modulation module is configured to provide a signal for transmission by modifying the load through the load modulation module, and wherein the current source is configured to provide a signal for transmission by generating pulses of current. Such an IC device can be used to produce a vehicle key that supports both load modulation and active transmission. Accordingly, even if a vehicle supports an immobilization system using active transmission between a transponder in the key and a base station in the steering column, a service center can perform maintenance on the vehicle using active transmission equipment as well as legacy load modulation equipment because the transponder supports both transmission modes.
In order to support both load modulation and active transmission, the circuity of a transponder includes the features of a load modulation transponder (e.g., as described with reference to
Because both load modulation and active transmission are supported in a single transponder, the transponder can be configured to determine whether to utilize load modulation or active transmission to communicate with a base station when initializing communication with the base station.
If, at decision point 704, the load modulation transmission mode is not selected and the active transmission mode is selected instead, then, at block 712, the transponder receives a command. In an embodiment, the command is sent by the base station and indicates how response data should be configured. At block 714, a capacitor begins charging. In an embodiment, the capacitor is the capacitor 642, as shown in
Although the operations of the method(s) herein are shown and described in a particular order, the order of the operations of each method may be altered so that certain operations may be performed in an inverse order or so that certain operations may be performed, at least in part, concurrently with other operations. In another embodiment, instructions or sub-operations of distinct operations may be implemented in an intermittent and/or alternating manner.
In the above description, specific details of various embodiments are provided. However, some embodiments may be practiced with less than all of these specific details. In other instances, certain methods, procedures, components, structures, and/or functions are described in no more detail than to enable the various embodiments of the invention, for the sake of brevity and clarity.
Although specific embodiments of the invention have been described and illustrated, the invention is not to be limited to the specific forms or arrangements of parts so described and illustrated. The scope of the invention is to be defined by the claims appended hereto and their equivalents.
Claims
1. An integrated circuit (IC) device comprising:
- a load modulation module;
- a current source coupled to the load modulation module;
- an interface to a resonant circuit, the interface coupled to the load modulation module and to the current source; and
- an interface to a charge source, the interface coupled to the current source;
- wherein the load modulation module is configured to provide a signal for transmission by modifying the load through the load modulation module; and
- wherein the current source is configured to provide a signal for transmission by generating pulses of current.
2. The IC device of claim 1, wherein the IC is configured to utilize either the load modulation module or the current source.
3. The IC device of claim 2, wherein the IC device determines if load modulation or active transmission should be used based on an initialization command.
4. The IC device of claim 1, wherein the IC device further comprises a command interpreter configured to interpret a received initialization command, enable the current source and disable the load modulation, and disable the current source and enable the load modulation module according to a mode indicated by the initialization command.
5. A transponder, the transponder comprising:
- a resonant circuit serving as an antenna;
- a load modulation module coupled to the resonant circuit; and
- a current source coupled to the resonant circuit;
- wherein the load modulation module is configured to transmit a signal via the resonant circuit by opening and closing a switch in order to modify the load on the resonant circuit; and
- wherein the current source is configured to transmit a signal via the resonant circuit by delivering electric current to the resonant circuit to generate pulses in a magnetic field.
6. The transponder of claim 5, wherein the transponder comprises a plurality of antennas.
7. The transponder of claim 6, wherein the plurality of antennas are arranged in an orthogonal pattern.
8. The transponder of claim 6, wherein the antenna with the strongest signal is used for transmission.
9. The transponder of claim 5, wherein the transponder utilizes either the load modulation module or the current source to transmit a signal via the resonant circuit.
10. The transponder of claim 5 further comprising a command interpreter configured to interpret a received initialization command, enable the current source and disable the load modulation, and disable the current source and enable the load modulation module according to a mode indicated by the initialization command.
11. The transponder of claim 10, wherein the command interpreter is implemented with a microcontroller, the microcontroller including a demodulator configured to receive a serial bitstream and convert the bitstream into at least one of a byte or a word.
12. A method for transmitting a signal via a resonant circuit of a transponder, the method comprising:
- selecting a transmission mode via control logic in an IC device;
- receiving, at an IC device, a command carried by a carrier signal; and
- if a transmission mode utilizing load modulation is selected: configuring response data stored in memory of the IC device as specified by the command; and providing data for wireless transmission using load modulation to a load modulation module of the IC device; and
- if a transmission mode utilizing active transmission is selected: charging a capacitor coupled to the IC device using the carrier signal; configuring response data stored in memory of the IC device as specified by the command; and providing data for wireless transmission using charge from the capacitor delivered by a current source of the IC device.
13. The method of claim 12, wherein if a transmission mode utilizing active transmission is selected, the method further comprises:
- determining if the IC device utilizing the transmission mode is coupled to multiple antennas; and
- if multiple antennas are found, providing the data to the antenna with the strongest channel for transmission.
14. The method of claim 13, wherein determining which antenna has the strongest channel comprises adding loads to channels coupled to each antenna and selecting the antenna with the highest amplitude.
15. The method of claim 12, wherein the transmission mode is selected in response to a command received from a base station.
16. The method of claim 15, wherein selecting a transmission mode, in accordance with a mode indicated by the command received from the base station, comprises at least one of:
- enabling the current source and disabling the load modulation module; and
- disabling the current source and enabling the load modulation module.
17. The method of claim 12, wherein the transmission mode is selected by pre-configuring the IC device utilizing the transmission mode.
18. The method of claim 12, wherein the carrier signal is turned off after the capacitor is finished charging.
Type: Application
Filed: Oct 9, 2015
Publication Date: Apr 13, 2017
Patent Grant number: 9969355
Applicant: NXP B.V. (Eindhoven)
Inventor: Robert Kofler (Graz Kroisbach)
Application Number: 14/879,985